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首页> 外文期刊>Applied optics >General silicon-on-insulator higher-order mode converter based on substrip dielectric waveguides
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General silicon-on-insulator higher-order mode converter based on substrip dielectric waveguides

机译:基于子介质波导的一般硅式绝缘体高阶模式转换器

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摘要

A general silicon mode-converter waveguide that converts a fundamental mode to any higher-order mode is proposed. Specifically, dielectric substrip waveguides are inserted in the fundamental mode propagation path so that the conversion is done directly in the same propagation waveguide, without coupling the power into another waveguide as it happens in traditional mode converters. The device has a very small footprint compared to traditional converters. A mathematical model is developed to determine the design parameters of the used dielectric material and analyze the whole performance of the proposed device. Both the effective index method (EIM) and the perturbative mode-coupled theory are used in our mathematical analysis to get exact values for both the coupling coefficient and the length of the used dielectric material, so as to ensure a maximum coupled power transfer to the higher-order mode. In addition, full vectorial 3D-FDTD simulations are performed to validate our mathematical model. Our results show good agreement between the approximate EIM method and accurate full vectorial 3D-finite-difference time-domain (FDTD) simulations in characterizing the device parameters and performance. In order to validate the design model, two mode converters are simulated, fabricated, and tested for converting a fundamental TE0 mode into both first- and second-order (TE1 and TE2) modes, respectively. Good insertion losses and low crosstalks are obtained. Good agreement between simulated and fabricated results are achieved. (C) 2019 Optical Society of America
机译:提出了一种将基本模式转换为任何高阶模式的通用硅模式转换器波导。具体地,在基本模式传播路径中插入电介质子尺寸波导,使得转换直接在相同的传播波导中完成,而不会在传统模式转换器中碰及另一波导。与传统转换器相比,该设备具有非常小的占地面积。开发了一种数学模型以确定使用的介电材料的设计参数,并分析所提出的装置的整体性能。有效索引方法(EIM)和扰动模式耦合理论都用于我们的数学分析,以获得耦合系数和使用介电材料的长度的精确值,以确保最大耦合电力传输到高阶模式。此外,进行全矢量3D-FDTD模拟以验证我们的数学模型。我们的结果表明,在表征设备参数和性能时,近似EIM方法与精确的全矢量3D有限差分时间域(FDTD)模拟之间的良好一致。为了验证设计模型,模拟,制造和测试了两个模式转换器,用于分别将基本TE0模式转换为第一和二阶(TE1和TE2)模式。获得良好的插入损耗和低串扰。实现模拟和制造结果之间的良好一致性。 (c)2019年光学学会

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